Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T05:58:53.100583Z
Paper Citation Record · LEDGER
As of 9 August 2026, this Paper Citation Record lists 47 of 47 outbound references and 0 inbound Pith citation observations for arXiv:2506.06613.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T05:58:53.100583Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-09T06:31:02.800959+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
47 of 47 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation b611708c-3113-469a-b1d8-334e0baf3bee · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Polynomial time and private learning of unbounded gaussian mixture models
Reference 1
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Observation ca4c66c6-9597-4145-94a1-7335eb14d705 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Mixtures of gaussians are privately learnable with a polynomial number of samples
Reference 2
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Observation 9f853fa0-176c-4c61-974c-86dd0e16b4aa · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Nearly tight sample complexity bounds for learning mixtures of gaussians via sample compression schemes
Reference 3
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Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Near-optimal sample complexity bounds for robust learning of gaussian mixtures via compression schemes
Reference 4
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Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Efficient learning of simplices
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Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Private and polynomial time algorithms for learning gaussians and beyond
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Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Private distribution learning with public data: The view from sample compression
Reference 7
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Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Minimax rates for conditional density estimation via empirical entropy
Reference 8
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Observation 7a1dbc92-b395-4d8f-8d62-6eef3de9b77d · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Learning smooth shapes by probing
Reference 9
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Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Density estimation on an unknown submanifold
Reference 10
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Observation 16c91562-8d7a-4a59-a20a-301b6cdd2e27 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Sharp rate of average decay of the fourier transform of a bounded set
Reference 11
Source-reported events for the cited work
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Observation 3c075236-5fcd-49d8-b170-04dc4906aec4 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Not all learnable distribution classes are privately learnable
Reference 12
Source-reported events for the cited work
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Observation 887a3db6-91d9-411c-a7f5-65b67bb0518b · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Model-based learning using a mixture of mixtures of gaussian and uniform distributions
Reference 13
Source-reported events for the cited work
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Observation 28182420-3790-41aa-a0a0-0574de20cb86 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Efficiently learning ising models on arbitrary graphs
Reference 14
Source-reported events for the cited work
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Observation a0c0d942-4098-4554-bb8e-062870daf79c · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations A gaussian uniform mixture model for robust kalman filtering
Reference 15
Source-reported events for the cited work
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Observation 1afb9dff-4cd1-439f-917b-99b38857b4ec · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Convex Optimization
Reference 16
Source-reported events for the cited work
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Observation 65f7ea38-4cbb-4a90-98e1-62d3d1c9d6ac · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations A functional approach to data structures and its use in multidimensional searching
Reference 17
Source-reported events for the cited work
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Observation 0b35e055-522b-4bf5-b321-7d88bd01e60d · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Learning from untrusted data
Reference 18
Source-reported events for the cited work
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Observation 5580bd71-865e-4f1c-87c3-6897a2bfa69a · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Computational Geometry: Algorithms and Applications
Reference 19
Source-reported events for the cited work
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Observation e64acad4-cfd9-431c-9a68-29355695633d · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations A probabilistic theory of pattern recognition , volume 31
Reference 20
Source-reported events for the cited work
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Observation 65cb7b11-703f-4a83-b690-2097a010efa0 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Combinatorial Methods in Density Estimation
Reference 21
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Observation 8f24f6cb-b1d7-4c12-bba9-2de94300ddd6 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations The total variation distance between high-dimensional gaussians
Reference 22
Source-reported events for the cited work
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Observation 2a3adad1-ca2a-4323-a78d-492d289c372d · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations The minimax learning rates of normal and ising undirected graphical models
Reference 23
Source-reported events for the cited work
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Observation a57d40d7-b0e4-4079-9a23-b91950936393 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Differential privacy
Reference 24
Source-reported events for the cited work
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Observation c50d1183-8006-43cc-8d8c-cbd3f5b7bfa3 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations On the sample complexity of adversarial multi-source pac learning
Reference 25
Source-reported events for the cited work
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Observation d8a4a7c8-74aa-4c40-ba95-8a02e75892b4 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Learning in the presence of malicious errors
Reference 26
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Observation 31fb98f0-6226-4899-aedd-53095e164553 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Relating data compression and learnability
Reference 27
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Observation 949095ba-51c5-4d41-b9c3-5b3151622d70 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations The curse of concentration in robust learning: Evasion and poisoning attacks from concentration of measure
Reference 28
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Observation 76cf440a-a913-4517-ab98-74dc0618f44c · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations A brief history of generative models for power law and lognormal distributions
Reference 29
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Observation 7a1d13f2-eb99-4004-8235-59c61b23650d · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Differential privacy with higher utility by exploiting coordinate-wise disparity: Laplace mechanism can beat gaussian in high dimensions
Reference 30
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Observation 4c36d732-7739-4b87-978e-74f7e2bdcfe5 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations On statistical learning of simplices: Unmixing problem revisited
Reference 31
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Observation 55fc84a7-7220-4d29-809f-c68b4dcb2f5e · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Unresolved cited work
Reference 32
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Observation df4b8343-6d88-4657-b16f-cc3e3bf31ed2 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Machine learning for anomaly detection: A systematic review
Reference 33
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Observation 8d33b176-b183-4ec4-9855-cff23beac741 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Minimax estimation of smooth densities in wasserstein distance
Reference 34
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Observation cc222ca5-ac38-4b46-b15f-3bba08a485f9 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations New upper bounds in klee’s measure problem
Reference 35
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Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations A fourier approach to mixture learning
Reference 36
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Observation 680a4115-6f1c-4b8c-a7d2-c43ddd538137 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Real and Complex Analysis
Reference 37
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Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Certifying some distributional robustness with principled adversarial training
Reference 38
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Observation da899c79-9a4b-41f2-9fb2-b7bcd8202614 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Sample complexity bounds for learning high-dimensional simplices in noisy regimes
Reference 39
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Observation 85fe5374-692e-41a3-a63b-93688627f5b6 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Special functions: An introduction to the classical functions of mathematical physics
Reference 40
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Observation d815d66c-611c-4c32-baa3-ca6079620e7a · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Tsybakov
Reference 41
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Observation 3397e481-3d7d-453c-9425-a64559340a8a · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Minimax rate of distribution estimation on unknown submanifolds under adversarial losses
Reference 42
Source-reported events for the cited work
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Observation 2b0e8f75-25f5-4d6e-b106-822a230400ba · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations A theory of the learnable
Reference 43
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Observation 1ae94377-e6b3-4c16-89ce-ad17d4648ea3 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations On minimax density estimation via measure transport
Reference 44
Source-reported events for the cited work
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Observation 6984a3a0-bb3c-43c6-a151-4f95dcf989c8 · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations @esa (Ref
Reference 45
Source-reported events for the cited work
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Observation affd2498-9c7b-4adc-b4de-bb2238db699b · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Unresolved cited work
Reference 46
Source-reported events for the cited work
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Observation ff9109b5-618b-4867-9a28-ed64c689829f · outbound
Robust Learnability of Sample-Compressible Distributions under Noisy or Adversarial Perturbations Adversarial Robustness through Bias Variance Decomposition: A New Perspective for Federated Learning
Reference 47
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-09T06:31:02.800959+00:00.
No inbound Pith citation observations are available.